These facts, of the attraction of electron streams which are in the same
direction and repulsion of streams in opposite directions, are all that
one need remember to figure out for himself what will happen under
various conditions. For example, if two coils of wire are carrying
currents what will happen is easily seen. Fig. 102 shows the two coils
and a section through them.
[Illustration: Fig 103]
Looking at this cross section we seem to have four wires, _1_ and
_2_ of coil _A_ and _3_ and _4_ of coil _B_. You see at once that
if the coils are free to move they will move into the dotted positions
shown in Fig 102, because wire _1_ attracts wire _3_ and repels wire
_4_, while wire _2_ attracts wire _4_ and repels wire _3_. If
necessary, and if they are free to move, the coils will turn
completely around to get to this position. I have shown such a case
in Fig. 103.
Wires which are not carrying currents do not behave in this way. The
action is due, but how we don't yet know, to the motions of the
electrons. As far as we can explain it to-day, the attraction of two
wires which are carrying currents is due to the attraction of the two
streams of electrons. Of course these electrons are part of the wires.
They can't get far away from the stay-at-home electrons and the nuclei
of the atoms which form the wires. In fact it is these nuclei which keep
the wandering electrons within the wires. The result is that if the
streams of electrons are to move toward each other the wires must go
along with them.
If the wires are held firmly the electron streams cannot approach one
another for they must stay in the wires. Wires, therefore, perform the
important service of acting as paths for electrons which are traveling
as electric currents. There are other ways in which electrons can be
kept in a path, and other means beside batteries for keeping them going.
It doesn't make any difference so far as the attraction or the repulsion
is concerned why they are following a certain path or why they stay in
it. So far as we know two streams of electrons, following parallel
paths, will always, behave just like the two streams of Fig. 101.
[Illustration: Fig 104]
Suppose, for example, there were two atoms which were each formed by a
nucleus and a number of electrons swinging around about the nucleus as
pictured in Fig. 104. The electrons are going of their own accord and
the nucleus keeps them from flying off at a tangent, the way mud flies
from the wheel of an automobile. Suppose these two atoms are free to
turn but not to move far from their present positions. They will turn so
as to make their electron paths parallel just as did the loops of Fig.
102.
[Illustration: Fig 105]
Now, I don't say that there are any atoms at all like the ones I have
pictured. There is still a great deal to be learned about how electrons
act inside different kinds of atoms. We do know, however, that the atoms
of iron act just as if they were tiny loops with electron streams.
Public-domain text, read in full here on John Shaqi.
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